Universal entrainment mechanism governs contact times with motile cells
arXiv:1704.05264 · doi:10.1103/PhysRevFluids.3.033103
Abstract
Contact between particles and motile cells underpins a wide variety of biological processes, from nutrient capture and ligand binding, to grazing, viral infection and cell-cell communication. The window of opportunity for these interactions is ultimately determined by the physical mechanism that enables proximity and governs the contact time. Jeanneret et al. (Nat. Comm. 7: 12518, 2016) reported recently that for the biflagellate microalga Chlamydomonas reinhardtii contact with microparticles is controlled by events in which the object is entrained by the swimmer over large distances. However, neither the universality of this interaction mechanism nor its physical origins are currently understood. Here we show that particle entrainment is indeed a generic feature for microorganisms either pushed or pulled by flagella. By combining experiments, simulations and analytical modelling we reveal that entrainment length, and therefore contact time, can be understood within the framework of Taylor dispersion as a competition between advection by the no slip surface of the cell body and microparticle diffusion. The existence of an optimal tracer size is predicted theoretically, and observed experimentally for C. reinhardtii. Spatial organisation of flagella, swimming speed, swimmer and tracer size influence entrainment features and provide different trade-offs that may be tuned to optimise microbial interactions like predation and infection.
New analytical entrainment theory; includes Supplementary informations as Appendix; Supplementary movies available upon request
References in corpus (9)
- The hydrodynamics of swimming microorganisms
- Fluid dynamics and noise in bacterial cell-cell and cell-surface scattering
- Direct measurement of the flow field around swimming microorganisms
- Fluid Flows Created by Swimming Bacteria Drive Self-Organization in Confined Suspensions
- Turning bacteria suspensions into a "superfluid"
- Geometric capture and escape of a microswimmer colliding with an obstacle
- Vortex arrays and ciliary tangles underlie the feeding-swimming tradeoff in starfish larvae
- Entrainment dominates the interaction of microalgae with micron-sized objects
- Fluid transport and mixing by an unsteady microswimmer
Cited by in corpus (13)
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- Colloidal transport in bacteria suspensions: from bacteria scattering to anomalous and enhanced diffusion
- Membrane penetration and trapping of an active particle
- Optimising low-Reynolds-number predation via optimal control and reinforcement learning
- Confinement enhances the diversity of microbial flow fields
- Confinement-induced accumulation and spontaneous de-mixing of microscopic active-passive mixtures
- Influence of thermal fluctuations on active diffusion at large Péclet numbers
- Janus microswimmers are poor hydrodynamic mixers
- Discontinuous phase transition in chemotactic aggregation with density-dependent pressure